EP3807255A1 - Low-dimensional hybrid post-perovskites for high efficiency white-light emission - Google Patents

Low-dimensional hybrid post-perovskites for high efficiency white-light emission

Info

Publication number
EP3807255A1
EP3807255A1 EP19732572.3A EP19732572A EP3807255A1 EP 3807255 A1 EP3807255 A1 EP 3807255A1 EP 19732572 A EP19732572 A EP 19732572A EP 3807255 A1 EP3807255 A1 EP 3807255A1
Authority
EP
European Patent Office
Prior art keywords
perovskite
post
dimensional hybrid
dimensional
hybrid
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
EP19732572.3A
Other languages
German (de)
French (fr)
Other versions
EP3807255B8 (en
EP3807255B1 (en
Inventor
Romain GAUTIER
Florian MASSUYEAU
Michael Paris
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Centre National de la Recherche Scientifique CNRS
Nantes Université
Original Assignee
Centre National de la Recherche Scientifique CNRS
Universite de Nantes
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Centre National de la Recherche Scientifique CNRS, Universite de Nantes filed Critical Centre National de la Recherche Scientifique CNRS
Publication of EP3807255A1 publication Critical patent/EP3807255A1/en
Application granted granted Critical
Publication of EP3807255B1 publication Critical patent/EP3807255B1/en
Publication of EP3807255B8 publication Critical patent/EP3807255B8/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Classifications

    • CCHEMISTRY; METALLURGY
    • C09DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
    • C09KMATERIALS FOR MISCELLANEOUS APPLICATIONS, NOT PROVIDED FOR ELSEWHERE
    • C09K11/00Luminescent materials, e.g. electroluminescent or chemiluminescent
    • C09K11/06Luminescent materials, e.g. electroluminescent or chemiluminescent containing organic luminescent materials
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D295/00Heterocyclic compounds containing polymethylene-imine rings with at least five ring members, 3-azabicyclo [3.2.2] nonane, piperazine, morpholine or thiomorpholine rings, having only hydrogen atoms directly attached to the ring carbon atoms
    • C07D295/02Heterocyclic compounds containing polymethylene-imine rings with at least five ring members, 3-azabicyclo [3.2.2] nonane, piperazine, morpholine or thiomorpholine rings, having only hydrogen atoms directly attached to the ring carbon atoms containing only hydrogen and carbon atoms in addition to the ring hetero elements
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07FACYCLIC, CARBOCYCLIC OR HETEROCYCLIC COMPOUNDS CONTAINING ELEMENTS OTHER THAN CARBON, HYDROGEN, HALOGEN, OXYGEN, NITROGEN, SULFUR, SELENIUM OR TELLURIUM
    • C07F7/00Compounds containing elements of Groups 4 or 14 of the Periodic Table
    • C07F7/24Lead compounds
    • HELECTRICITY
    • H10SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10HINORGANIC LIGHT-EMITTING SEMICONDUCTOR DEVICES HAVING POTENTIAL BARRIERS
    • H10H20/00Individual inorganic light-emitting semiconductor devices having potential barriers, e.g. light-emitting diodes [LED]
    • H10H20/80Constructional details
    • H10H20/85Packages
    • H10H20/851Wavelength conversion means
    • H10H20/8511Wavelength conversion means characterised by their material, e.g. binder
    • H10H20/8512Wavelength conversion materials
    • HELECTRICITY
    • H10SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10KORGANIC ELECTRIC SOLID-STATE DEVICES
    • H10K85/00Organic materials used in the body or electrodes of devices covered by this subclass
    • H10K85/30Coordination compounds
    • HELECTRICITY
    • H10SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10KORGANIC ELECTRIC SOLID-STATE DEVICES
    • H10K85/00Organic materials used in the body or electrodes of devices covered by this subclass
    • H10K85/50Organic perovskites; Hybrid organic-inorganic perovskites [HOIP], e.g. CH3NH3PbI3
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B82NANOTECHNOLOGY
    • B82YSPECIFIC USES OR APPLICATIONS OF NANOSTRUCTURES; MEASUREMENT OR ANALYSIS OF NANOSTRUCTURES; MANUFACTURE OR TREATMENT OF NANOSTRUCTURES
    • B82Y20/00Nanooptics, e.g. quantum optics or photonic crystals
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B82NANOTECHNOLOGY
    • B82YSPECIFIC USES OR APPLICATIONS OF NANOSTRUCTURES; MEASUREMENT OR ANALYSIS OF NANOSTRUCTURES; MANUFACTURE OR TREATMENT OF NANOSTRUCTURES
    • B82Y40/00Manufacture or treatment of nanostructures
    • CCHEMISTRY; METALLURGY
    • C09DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
    • C09KMATERIALS FOR MISCELLANEOUS APPLICATIONS, NOT PROVIDED FOR ELSEWHERE
    • C09K2211/00Chemical nature of organic luminescent or tenebrescent compounds
    • C09K2211/10Non-macromolecular compounds
    • C09K2211/1018Heterocyclic compounds
    • C09K2211/1025Heterocyclic compounds characterised by ligands
    • C09K2211/1044Heterocyclic compounds characterised by ligands containing two nitrogen atoms as heteroatoms
    • CCHEMISTRY; METALLURGY
    • C09DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
    • C09KMATERIALS FOR MISCELLANEOUS APPLICATIONS, NOT PROVIDED FOR ELSEWHERE
    • C09K2211/00Chemical nature of organic luminescent or tenebrescent compounds
    • C09K2211/18Metal complexes
    • C09K2211/188Metal complexes of other metals not provided for in one of the previous groups
    • HELECTRICITY
    • H10SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10KORGANIC ELECTRIC SOLID-STATE DEVICES
    • H10K50/00Organic light-emitting devices
    • H10K50/10OLEDs or polymer light-emitting diodes [PLED]
    • H10K50/11OLEDs or polymer light-emitting diodes [PLED] characterised by the electroluminescent [EL] layers

Definitions

  • the present invention relates to a new type of low-dimensional hybrid post-perovskites for high efficiency white light emission. More precisely, the invention relates to a one dimensional post-perovskite of formula AaM m X x .yHteO wherein A is a cis- or trans- 2,5-dialkylpiperazine derivative bearing C1 -C3 linear or branched alkyl groups, M is one or more metal, X one or more halogen, 0 ⁇ a ⁇ 5, 1 ⁇ m ⁇ 2, 2 ⁇ x ⁇ 12, 0 ⁇ y.
  • the invention also relates to material and luminescent device comprising the same and methods of preparation of the of low-dimensional hybrid post-perovskites.
  • Low-dimensional hybrid perovskites have recently shown a great potential for applications in solar cells and light-emitting diodes [1-7]. While decreasing the dimensionality, such compound exhibit quantum confinement effects leading to tunable optical and electronic properties. Thus, broadband white-light emission has been observed from diverse hybrid perovskites and, owing to high color rendering index (CRI), high thermal stability, and low-temperature solution processability, this family of materials has focused interest for solid-state lighting.
  • CRI color rendering index
  • the photoluminescence quantum yields can be greatly increased by changing those for one dimensional (1 D) hybrid post- perovskite.
  • the 1 D hybrid post- perovskite of the invention which shows a PLQY of > 10 %, preferably > 20 %, > 30 % or even > 45 %.
  • This new family of hybrid metal halide materials can enhance all the properties requiring the stabilization of trapped excitons.
  • the invention relates to one dimensional (1 D) hybrid post- perovskite of formula I:
  • A represents a cis- or trans- piperazine derivative of formula II:
  • R 1 and R 2 identical or different, represent a C 1 -C3 linear or branched alkyl chain
  • M represents one or more metal atoms chosen from the group comprising Pb, Sn, Ge, Sb, Bi, Cu, Mn and Zn and mixture thereof,
  • X represents one or more halogen atoms.
  • the ladder compound of the invention is defined as a "low dimensional hybrid post-perovskite”.
  • the specific“ladder” structure of the compound of the invention can thus be considered as a low-dimensional hybrid post-perovskite.
  • the 1 D post- perovskites of the invention are built of both corner- and edge-sharing octahedral, hence the term“ladder”.
  • the term “ladder” refers to the typical structure of the 1 D hybrid post-perovskite structure according to the invention wherein the octahedra are connected to each other through corners and edges instead of only corners like it is generally observed for 2D perovskites (differences are shown on Figure 1 a and 1 b).
  • post-perovskite was originally assigned to the high- pressure phase of MgSi03. Flowever, in the past years, the terminology “post-perovskite” has been extended to describe metal halides [49] or hybrid organic-inorganic compounds under atmospheric pressure [50]. Here, we extend the terminology to“low-dimensional post-perovskite”.
  • the ladder compound of the invention could also be referenced as “one dimensional ladder structured hybrid metal halide”.
  • A may represent a cis- or trans- piperazine derivative of formula II:
  • R 1 and R 2 identical or different, represent a C1 -C3 linear or branched alkyl chain.
  • R 1 and R 2 represent methyl, ethyl, propyl or isopropyl groups and more preferably methyl groups.
  • A represents trans-2,5-dimethylpiperazine (TDMP).
  • X may represent one or more halogen atoms.
  • the halogen may be independently chosen from F, Cl, Br, and I and mixtures thereof.
  • X may be a mixture of two or more halogens F, Cl, Br, and/or I.
  • X may be Cl, Br, and/or I.
  • the one dimensional (1 D) hybrid post-perovskite of the invention may be of formula III:
  • M may represent one or more metal atoms.
  • the metal may be a metal chosen in the group comprising Pb, Sn, Ge, Sb, Bi, Cu, Mn and Zn.
  • the M may be Pb and/or Sn.
  • Other metals not listed above may also be present in the one dimensional hybrid post- perovskite of the invention.
  • M may be Pb or Sn or M may represent a mixture of two or more metals wherein Pb represents at least 20 mol% of the mixture of metals M.
  • M may be a mixture of metals M 1 and M 2 , and M 1 and M 2 identical or different, may independently represent any metal M as defined as above.
  • the one dimensional (1 D) hybrid post-perovskite of the invention may be of formula IV:
  • a, x, m, b, c, i, ml and m2 have the values given above.
  • TDMP hybrid post-perovskite crystal form
  • TDMP hybrid post-perovskite crystal form
  • XRPD XRPD pattern at Bragg angles shows peaks of value (2Q) 7.92°, 12.52°, 14.60°, 20.24°, 22.50°, 23.20°, 28.22°, 28.80°.
  • TDMP hybrid post-perovskite crystal form
  • TDMP hybrid post-perovskite crystal form
  • XRPD XRPD pattern at Bragg angles shows peaks of value (2Q) 8.15°, 12.86°, 18.18°, 20.74°, 23.02°, 23.75°, 28.87°, 29.45°, 32.75°, 33.78°, 34.78°, 35.28°.
  • TDMP hybrid post-perovskite crystal form
  • TDMP one dimensional hybrid post-perovskite crystal form
  • TDMP hybrid post-perovskite crystal form
  • XRPD XRPD pattern at Bragg angles shows peaks of value (2Q) 8.10°, 12.71 °, 20.45°, 22.68°, 23.40°, 28.40°, 28.98°.
  • the invention also relates to a method for producing one dimensional hybrid post-perovskite according to the invention, comprising a step of mixing the reagents:
  • the method further comprises a step of heating and agitating the mixture.
  • the heating temperature may be from 20°C to 250°C, preferably heating under reflux temperature, for example at 100°C.
  • the agitation may be carried over a period from 10 seconds to 100 hours, preferably until complete dissolution of the metal, for example 8 hours.
  • the invention also relates to a luminescent material comprising a one dimensional hybrid post-perovskite according to the invention. It is meant by“luminescent material”, a material capable of emitting light by a substance not resulting from heat; it is thus a form of cold-body radiation. It can be caused by chemical reactions, light, electrical energy, subatomic motions or stress on a crystal, which all are ultimately caused by spontaneous emission. This distinguishes luminescence from incandescence, which is light emitted by a substance as a result of heating.
  • the invention further relates to a luminescent device comprising a one dimensional hybrid post-perovskite material according to the invention. It is meant by “luminescent device”, a device including a luminescent material.
  • the invention also concerns a use of a one dimensional hybrid post-perovskite according to the invention in a luminescent device.
  • Examples of device include, but are not limited to, a device comprising LEDs such as a display or a backlighting unit, a LASER, a wireless light fidelity, a large area display.
  • the one dimensional hybrid post-perovskites of the invention have many advantages.
  • the compounds of the invention may be soluble in water at room temperature under agitation, and films can be simply processed by drop casting technique.
  • the one dimensional hybrid post-perovskites of the invention may have the same structure, independently of the halogen used.
  • the one dimensional hybrid post-perovskites of the invention have a photoluminescence quantum yield superior or equal to 10 %, preferably superior or equal to 20 %, superior or equal to 30 % or superior or equal to 45%.
  • photoluminescence quantum yield the ratio of the number of photons emitted to the number of photons absorbed by the sample at a certain excitation wavelength.
  • the material of the invention may be stable up to 250°C which is higher than temperatures of use in LED technologies.
  • FIG. 3 represents powder X-Ray diffraction patterns of (a) layered 2D hybrid perovskite based on 1 ,4-Bis(3-aminopropyl)piperazine (BAPP) and (b) 1 D hybrid post-perovskite based on trans-2,5- dimethylpiperazine (TDMP) (each bottom diagrams are simulations).
  • BAPP layered 2D hybrid perovskite based on 1 ,4-Bis(3-aminopropyl)piperazine
  • TDMP trans-2,5- dimethylpiperazine
  • FIG. 5 represents Tauc plot for the hybrid post-perovskite.
  • the bandgap (3.92 eV) corresponds to the intersection of a linear fitting of the band-to-band transition with the zero energy axis.
  • the exciton binding is estimated at 0.60eV (difference between 3.92eV and 3.32eV).
  • FIG. 6 represents PLE (top) and PL (bottom) spectra for the 1 D hybrid post-perovskite at different temperatures.
  • a em (A exc ) were selected to maximize the emission signal.
  • FIG. 7 represents PLE (top) and PL (bottom) spectra for the 2D hybrid perovskite at different temperatures.
  • a em (A exc ) were selected to maximize the emission signal.
  • - Figure 8 represents evolution of the photoluminescence properties vs. temperature for the 1 D hybrid post-perovskite.
  • - Figure 9 represents PL decay lifetime vs. temperature for the 2D hybrid perovskite and 1 D hybrid post-perovskite.
  • FIG. 12 represents Temperature dependant Raman spectra (Laser wavelength excitation : 512nm) of (a) 2D perovskite from 200 cm -1 to 1700 cm -1 , (b) 1 D post-perovskite from 200 cm -1 to 1700 cm -1 , (c) 2D perovskite from 250 cm -1 to 550 cm -1 , (d) 1 D post-perovskite from 250 cm -1 to 500 cm -1 , (e) 2D perovskite from 700 cm -1 to 1200 cm -1 , (f) 1 D post- perovskite from 750 cm -1 to 1 150 cm -1 , (g) 2D perovskite from 1200 cm -1 to 1600 cm -1 , (f) 1 D post-perovskite from 1 150 cm -1 to 1600 cm -1 . All spectra have been background subtracted and normalized to the band located at 303 cm -1 and 286 cm -1 for the 2D perov
  • FIG. 13 represents Raman spectra of (a) 2D hybrid perovskite compared with (BAPP)Br 4 , (b) 1 D post-perovskite compared with (TDMP)Br 2 .
  • a 1 D post-perovskite of formula (TDMP)PbBr 4 according to the invention was obtained.
  • a comparative example 2D perovskite of formula (BAPP)Pb2Brs has been prepared in the same experimental conditions.
  • (BAPP)Pb2Brs is not part of the invention.
  • Single crystals were synthesized by hydrothermal method (180°C during 24h and slow cooling at the rate 10°C/h) using a 23mL Teflon-lined stainless steel autoclave.
  • larger crystals suitable for single-crystal X-ray diffraction could be grown by slow evaporation or vapour diffusion (i.e. diffusion of the vapour of a non-solvent (ethanol) inside of a vial containing the material dissolved in a solvent (water)) [34-36]. Crystals were recovered by filtration. Single-crystal X-ray diffraction. The structure determination was carried out using a Bruker Nonius KappaCCD diffractometer (Mo Ka radiation). SADABS program was used for absorption corrections. The crystal structure was determined with SHELXT and refined with SHELXL- 2013. PLATON program was used to check for additional symmetry elements.
  • CCDC 1551179 contains the supplementary crystallographic data.
  • Solid-state NMR 207 Pb solid state NMR experiments were performed at 302 K on a 300 MHz Bruker Avance III by using a 4 mm MAS probe.
  • the 207 Pb MAS NMR spectra were acquired with a rotor synchronized Hahn echo sequence (p/2 - t - p - t - acq) with t equal to one rotor period and a radio-frequency field of 90 kHz.
  • the MAS frequency was set to 14 kHz and the recycle delays between scans ranged from 2 to 5 s.
  • the transient signals were spectrally dispersed into a Princeton Instruments SP2300 imaging Acton spectrograph and temporally resolved with a high dynamic range Hamamatsu C7700 streak camera. Measurements were carried out in an Oxford cryostat for temperature measurement down to 77 K (nitrogen cooling).
  • UV/Vis spectroscopy Optical reflection spectra were acquired using a Perkin lambda 1050 equipped with a 150 mm integrating sphere.
  • ICP OES The quantification of Mn was carried out using an ICP- OES iCAP6300 (Thermo). Five standards from 0.01 ppm to 1 ppm Mn were prepared. 100 mg of the material was dissolved into 10 mL of ultrapure water.
  • Example 2 RESULTS
  • the 2D (1 10) hybrid perovskite exhibits structure in which the ammonium groups are placed within the cavities formed by the inorganic layers ( Figure 1 (a)).
  • the 1 D hybrid post-perovskite (TDMP)PbBr 4 exhibits an intense white emission ( Figure 1 (c)).
  • the ladder compound derives from post- perovskite by slicing along (100) planes ( Figure 1 (a)).
  • the ladder compound is defined as a "low dimensional hybrid post-perovskite"
  • this specific ladder structure can be considered as a low- dimensional post-perovskite.
  • Solid state NMR experiments were performed to confirm the architecture of the inorganic components.
  • the 207 Pb solid state NMR line is governed by chemical shift (CS) interaction which reflects the electronic environment (EE) of the lead nucleus.
  • CS chemical shift
  • EE electronic environment
  • the isotropic part of CS corresponds to the position of the line whereas the anisotropic part (CSA) originates from EE anisotropy caused by local distortions of the PbBr6 octahedra.
  • CSA anisotropic part
  • the 207 Pb MAS NMR spectrum consists in a single line at 180 ppm flanked by spinning side bands (ssb) as shown in Figure 1 (d) for the layered perovskite based on BAPP.
  • ssb spinning side bands
  • Figure 1 (d) for the layered perovskite based on BAPP.
  • CS is sensitive to small differences in local structural geometry.
  • the broad line exhibited by the 207 Pb NMR spectrum of the one-dimensional post- perovskite based on TDMP ( Figure 1 (d)) at the similar isotropic chemical shift than the two-dimensional perovskite based on BAPP and with no significant change in CSA (since no additional ssb appears outside the spectral range initially covered by BAPP compound) is a direct proof of the similar environments of lead (i.e. two terminal bromines in cis position, and four bridging bromines) of the two compounds.
  • the line broadening is a direct consequence of distribution of octahedron geometries around a mean geometry.
  • Both the 2D perovskite and post-perovskite according to the invention showed high color rendering indexes (CRI of 87, and 75 respectively), which are similar to the ones of previously reported 2D hybrid perovskites [12,17,18].
  • the corresponding correlated color temperatures (CCT) are 4369 K and 7458 K, respectively ( Figure 2(a)).
  • the main difference between the two hybrid lead halides lies on the intensity of the broadband white emission.
  • the PLQY for the layered perovskite was measured at 1.5% which is within the same range as the ones of previously reported compounds [12,17,18].
  • the PLQY of the low-dimensional post-perovskite according to the invention was measured at 45% which is 5-fold of the PLQY of the previous record in hybrid perovskite, and almost 4-fold of the PLQY of the previous record in all lead halides [16,18]
  • sharp excitonic peaks can be observed in Kubelka-Munk absorption spectra ( Figure 2 (b)) and the exciton binding energy is very high (estimated at 600 meV) for the 1 D hybrid post-perovskite ( Figure 5) [7,26-29]
  • an Urbach tail below the bandgap shows the formation of localized states (corresponding, for example, to lattice defects/disorder) prior to photoexcitation (Figure 2 (b)) ⁇
  • Photoluminescence spectra at 300K show a broadband emission at 520 nm and a shoulder at 380 nm attributed to the formation of self-trapped exciton (STE) and free exciton (FE), ( Figure 2 (c), 6 and 7) [17]. While increasing the temperature from 77 K to room temperature, both perovskite and post-perovskite show a decrease of the PL intensity together with a blueshift of the broadband emission (Figure 8).
  • This lifetime which is sensitive to non-rad iative pathways, decreases from 77K to room temperature for both compounds ( Figure 9).
  • Both the 2D perovskite and 1 D post-perovskite exhibit Pb in the same environments (i.e. Pb connected with four bridging bromines and two terminal bromines in cis position) (( Figure 1 (b) and (d)).
  • Pb connected with four bridging bromines and two terminal bromines in cis position
  • Figure 1 (b) and (d) Flowever, 2D perovskites are built of corner-sharing PbBr6 octahedra while the 1 D post- perovskites are built of both corner- and edge- sharing octahedra. This structural difference is very important for some radiative species.
  • the shortest Pb-Pb distances are 5.9638(6) A in the 2D perovskite while they are 4.5494(64) A in the 1 D post-perovskite.
  • each of the dimers (pairs of edge-sharing PbBr6 octahedra) in 1 D post-perovskite can act more independently (i.e. without affecting the overall structure) to create species involving Pb pairs and X pairs than in more condensed edge- sharing lead halide structures [16].
  • the dimensionality of the crystalline systems also plays an important role on the exciton self-trapping.
  • the deformation energy is low and there is no or small barrier to self-trapping [32]
  • free states are always stable or metastable in three-dimensional systems [32]
  • the excited species are less likely to diffuse throughout the material when the dimensionality decreases. These phenomena would explain why broad-band emissions originating from self- trapped excitons would lead to higher PLQY when the dimensionality of hybrid lead halides is lowered. Thus, lowering the dimensionality is detrimental to solar cells applications in which exciton trapping must be prevented but beneficial in SSL in which it enhances the PLQY.
  • the PL quenching with temperature must be minimized to enhance the white emission at room temperature.
  • the emissions are relatively high at low temperature (i.e. below 100K) but rapidly quench with temperature.
  • Synthesizing low-dimensional hybrid post-perovskite is an efficient approach to stabilize the self-trapped states.
  • the ability of creating such self-trapped states in hybrid lead halides is another important parameter to control the intensity of the white broad-band emission.
  • Table 1 Crystallographic data for the 2D hybrid perovskite based on 1 ,4- Bis(3-aminopropyl)piperazine (BAPP).
  • Table 2 Atomic Coordinates (*104) and Equivalent Isotropic Displacemen Parameters (A2*103) for the 2D hybrid perovskite.
  • the mean lifetime t was obtained by fitting the PL decay with two non-coupled exponentials convoluted with the laser pulse.
  • Table 4 presents the fitting results obtained for the different samples at various temperatures where T I , T2, P I , P2 are lifetimes and weights for the two non- coupled exponentials.
  • DFT calculations were performed on both BAPP and TDMP cations. Ground state geometry optimisations and vibrational frequencies were computed at the DFT level using Gaussian 16 Rev.
  • this analysis reveals weak interactions between TDMP and post-perovskite network which prevents the luminescence quenching for this compound.
  • perovskite network close proximity with the confined alkyl chains of BAPP favors the thermal quenching by C-H vibrations.
  • This investigation is also supported by X-ray diffraction data which shows that BAPP is well-ordered and confined inside the cavities of the (110) 2D perovskites.
  • TDMP is not constrained by the inorganic post-perovskite network as suggested by the disorder observed by X-ray diffraction.

Landscapes

  • Chemical & Material Sciences (AREA)
  • Organic Chemistry (AREA)
  • Engineering & Computer Science (AREA)
  • Materials Engineering (AREA)
  • Inorganic Chemistry (AREA)
  • Luminescent Compositions (AREA)

Abstract

The present invention relates to a new type of low-dimensional hybrid post-perovskites for high efficiency white light emission. More precisely, the invention relates to a one dimensional post-perovskite of formula AaMmXx.yH2O wherein A is a cis- or trans- 2,5-dialkylpiperazine derivative bearing C1-C3 linear or branched alkyl groups, M is one or more metal, X one or more halogen, 0 < a < 5, 1 < m < 2, 2 < x < 12, 0 < y. The invention also relates to material and luminescent device comprising the same and methods of preparation of the of low-dimensional hybrid post- perovskites.

Description

LOW-DIMENSIONAL HYBRID POST-PEROVSKITES FOR HIGH EFFICIENCY WHITE-LIGHT EMISSION
Technical field
The present invention relates to a new type of low-dimensional hybrid post-perovskites for high efficiency white light emission. More precisely, the invention relates to a one dimensional post-perovskite of formula AaMmXx.yHteO wherein A is a cis- or trans- 2,5-dialkylpiperazine derivative bearing C1 -C3 linear or branched alkyl groups, M is one or more metal, X one or more halogen, 0 < a < 5, 1 < m < 2, 2 < x < 12, 0 < y. The invention also relates to material and luminescent device comprising the same and methods of preparation of the of low-dimensional hybrid post-perovskites.
In the following description, references are mentioned in ([ ]) which is linked to the list at the end of the examples.
Technical background
Low-dimensional hybrid perovskites have recently shown a great potential for applications in solar cells and light-emitting diodes [1-7]. While decreasing the dimensionality, such compound exhibit quantum confinement effects leading to tunable optical and electronic properties. Thus, broadband white-light emission has been observed from diverse hybrid perovskites and, owing to high color rendering index (CRI), high thermal stability, and low-temperature solution processability, this family of materials has focused interest for solid-state lighting.
Mechanisms for optoelectronic properties of hybrid perovskites have been widely investigated in the past few years. The photogeneration of electron-hole pairs is highly efficient and, for this reason, these materials are of interest for applications ranging from photovoltaics to solid-state lighting. However, after the photogeneration of excitons, specific mechanisms must be enhanced depending on the targeted properties. On the one hand, the exciton dissociation and the diffusion of free carriers must be optimal when considering solar cells [4,5,14,15]. On the other hand, when considering solid-state lighting, the broadband white emission was proposed to originate from exciton self-trapping forming radiative centres identified by first-principle calculations as Pb23+, Pb3+, X2 and X2 (X = Halogens) [10,16-19]
However, the reported photoluminescence quantum yields (PLQY) remain low (i.e. PLQY in the range 0.5%-9%) and no approach has shown to successfully increase the intensity of this emission [8-13]
There is therefore a need to enhance the photoluminescence quantum yields of hybrid perovskites and more generally the optoelectronic properties of hybrid perovskites known in the art.
Detailed description
Applicants have surprisingly observed that, compared to the prior art 2D perovskite, the photoluminescence quantum yields can be greatly increased by changing those for one dimensional (1 D) hybrid post- perovskite.
Applicants demonstrated that this white emission can be greatly enhanced for a polymorph of the 2D hybrid perovskite: the 1 D hybrid post- perovskite of the invention which shows a PLQY of > 10 %, preferably > 20 %, > 30 % or even > 45 %. This new family of hybrid metal halide materials can enhance all the properties requiring the stabilization of trapped excitons.
The invention relates to one dimensional (1 D) hybrid post- perovskite of formula I:
AaMmXx,yH20 Formula I wherein
- 0 < a < 5, 1 < m < 2,
2 < x < 12,
0 < y,
A represents a cis- or trans- piperazine derivative of formula II:
Formula II
in which R1 and R2, identical or different, represent a C1-C3 linear or branched alkyl chain,
M represents one or more metal atoms chosen from the group comprising Pb, Sn, Ge, Sb, Bi, Cu, Mn and Zn and mixture thereof,
X represents one or more halogen atoms.
Using the same approach to define "low-dimensional hybrid perovskite" from a "hybrid perovskite", the ladder compound of the invention is defined as a "low dimensional hybrid post-perovskite". The specific“ladder” structure of the compound of the invention can thus be considered as a low-dimensional hybrid post-perovskite. The 1 D post- perovskites of the invention are built of both corner- and edge-sharing octahedral, hence the term“ladder”. Therefore, as used herein, the term “ladder” refers to the typical structure of the 1 D hybrid post-perovskite structure according to the invention wherein the octahedra are connected to each other through corners and edges instead of only corners like it is generally observed for 2D perovskites (differences are shown on Figure 1 a and 1 b).
The structure“post-perovskite” was originally assigned to the high- pressure phase of MgSi03. Flowever, in the past years, the terminology “post-perovskite” has been extended to describe metal halides [49] or hybrid organic-inorganic compounds under atmospheric pressure [50]. Here, we extend the terminology to“low-dimensional post-perovskite”.
The ladder compound of the invention could also be referenced as “one dimensional ladder structured hybrid metal halide”.
It is thus meant by“one dimensional”, the ladder structure of the post-perovskite according to the invention where the metal-halide moieties form one dimensional chains.
Advantageously, A may represent a cis- or trans- piperazine derivative of formula II:
Formula II
in which R1 and R2, identical or different, represent a C1 -C3 linear or branched alkyl chain. Preferably, R1 and R2 represent methyl, ethyl, propyl or isopropyl groups and more preferably methyl groups. Preferably, A represents trans-2,5-dimethylpiperazine (TDMP).
Advantageously, X may represent one or more halogen atoms. The halogen may be independently chosen from F, Cl, Br, and I and mixtures thereof. X may be a mixture of two or more halogens F, Cl, Br, and/or I. Preferably, X may be Cl, Br, and/or I.
Advantageously, the one dimensional (1 D) hybrid post-perovskite of the invention may be of formula III:
AaMmBrbClcli,yH20 Formula III
wherein
- A, a, M, m and y are defined as above,
- 0 < b < 12, 0 < c < 12, 0 < i < 12 and 2 < b + c + i < 12.
Advantageously, M may represent one or more metal atoms. The metal may be a metal chosen in the group comprising Pb, Sn, Ge, Sb, Bi, Cu, Mn and Zn. Preferably, the M may be Pb and/or Sn. Other metals not listed above may also be present in the one dimensional hybrid post- perovskite of the invention. For example, M may be Pb or Sn or M may represent a mixture of two or more metals wherein Pb represents at least 20 mol% of the mixture of metals M. M may be a mixture of metals M1 and M2, and M1 and M2 identical or different, may independently represent any metal M as defined as above.
Advantageously, the one dimensional (1 D) hybrid post-perovskite of the invention may be of formula IV:
AaM1 miM2 m2BrbClcli,yH20 Formula IV
wherein
- A, a, b, c, i and y are defined as above,
- M1 and M2 identical or different, independently represents any metal M as defined as above,
- 0 < ml < 2, 0 < m2 < 2 and 1 < ml + m2 < 2.
Advantageously, a, x, m, b, c, i, ml and m2 have the values given above. Preferably, a may range from 0 to 5 (0 being excluded), 0 < a < 5, preferably a = 1.
Advantageously, m may range from 1 to 2, 1 < m < 2, preferably m = 1.
Advantageously, x may range from 2 to 12, 2 < x < 12, preferably x = 4.
Advantageously, b, c and i may each range from 0 to 12 and b + c + i = x and may range from 2 to 12.
Advantageously, ml and m2 may each range from 0 to 2 and ml + m2 = m and may range from 1 to 2.
Advantageously, a may be equal to 1 , m may be equal to 1 , x may be equal to 4, A may be TDMP, M may be Pb or Sn, and X may be Cl, Br, and/or I. Advantageously, a may be equal to 1 , ml may be in a range from 0.9000 to 0.9999, m2 may be in a range from 0.0001 to 0.1000, x may be equal to 4, A may be TDMP, M1 may be Pb or Sn, M2 may be Mn and X may be Cl, Br, and/or I.
In a variant of the invention, it also relates to a one dimensional (1 D) hybrid post-perovskite crystal form (i.e. (TDMP)PbBr4) wherein the XRPD pattern at Bragg angles shows peaks of value (2Q) 7.92°, 12.52°, 14.60°, 20.24°, 22.50°, 23.20°, 28.22°, 28.80°.
In a variant of the invention, it also relates to a one dimensional (1 D) hybrid post-perovskite crystal form (i.e. (TDMP)PbCU) wherein the XRPD pattern at Bragg angles shows peaks of value (2Q) 8.15°, 12.86°, 18.18°, 20.74°, 23.02°, 23.75°, 28.87°, 29.45°, 32.75°, 33.78°, 34.78°, 35.28°.
In a variant of the invention, it also relates to a one dimensional (1 D) hybrid post-perovskite crystal form (i.e. (TDMP)Pbl4) wherein the XRPD pattern at Bragg angles shows peaks of value (2Q) 7.68°, 12.13°, 13.73°, 21.74°, 22.42°, 27.79°, 32.83°.
In a variant of the invention, it also relates to a one dimensional (1 D) hybrid post-perovskite crystal form (i.e. (TDMP)Pbo.9997Mno.ooo3Br4) wherein the XRPD pattern at Bragg angles shows peaks of value (2Q) 8.10°, 12.71 °, 20.45°, 22.68°, 23.40°, 28.40°, 28.98°.
The invention also relates to a method for producing one dimensional hybrid post-perovskite according to the invention, comprising a step of mixing the reagents:
- one or more M or MX2,
- a piperazine derivative, and
- one or more aqueous HX to obtain an aqueous mixture.
The piperazine derivative, M and X are defined as above.
Advantageously, the method further comprises a step of heating and agitating the mixture. The heating temperature may be from 20°C to 250°C, preferably heating under reflux temperature, for example at 100°C. The agitation may be carried over a period from 10 seconds to 100 hours, preferably until complete dissolution of the metal, for example 8 hours. The invention also relates to a luminescent material comprising a one dimensional hybrid post-perovskite according to the invention. It is meant by“luminescent material”, a material capable of emitting light by a substance not resulting from heat; it is thus a form of cold-body radiation. It can be caused by chemical reactions, light, electrical energy, subatomic motions or stress on a crystal, which all are ultimately caused by spontaneous emission. This distinguishes luminescence from incandescence, which is light emitted by a substance as a result of heating.
The invention further relates to a luminescent device comprising a one dimensional hybrid post-perovskite material according to the invention. It is meant by “luminescent device”, a device including a luminescent material.
The invention also concerns a use of a one dimensional hybrid post-perovskite according to the invention in a luminescent device.
Examples of device include, but are not limited to, a device comprising LEDs such as a display or a backlighting unit, a LASER, a wireless light fidelity, a large area display. The one dimensional hybrid post-perovskites of the invention have many advantages. In addition to the simple and reproducible synthesis conditions, the compounds of the invention may be soluble in water at room temperature under agitation, and films can be simply processed by drop casting technique. Advantageously, the one dimensional hybrid post-perovskites of the invention may have the same structure, independently of the halogen used.
Advantageously, the one dimensional hybrid post-perovskites of the invention have a photoluminescence quantum yield superior or equal to 10 %, preferably superior or equal to 20 %, superior or equal to 30 % or superior or equal to 45%. In the context of the invention, it is meant by “photoluminescence quantum yield”, the ratio of the number of photons emitted to the number of photons absorbed by the sample at a certain excitation wavelength.
Advantageously, the material of the invention may be stable up to 250°C which is higher than temperatures of use in LED technologies.
Other advantages may be observed by the skilled artisan upon reading the following examples.
Brief description of the figures
- Figure 1 represents (a) representation of the crystal structures of the two low-dimensional (BAPP)Pb2Brs and (TDMP)PbBr4 compounds from the parent perovskite (left) and post-perovskite (right), (b) detailed view of the two compounds: in the low-dimensional hybrid post-perovskite, all centres ( Pb23+, Pb22+ Pb3+, X2 or X2-) are possible owing to short Pb-Pb and X-X pairs, (c) pictures of 2D hybrid perovskite (left) and 1 D post- perovskite (right) under UV (lQCo = 365 nm), (d) 207Pb solid-state MAS (14 kHz) NMR spectra of hybrid perovskite (Pv) and post-perovskite (Post-Pv).
- Figure 2 represents Absorption and Photoluminescence properties of hybrid perovskite and post-perovskite, (a) CIE coordinates of 2D hybrid perovskite (Pv) and 1 D hybrid post-perovskite (Post-Pv), (b) Kubelka-Munk absorption spectra, (c) photoluminescence excitation (PLE) and emission (PL) spectra are shown at ambient and liquid nitrogen temperature (PLE: Aem= 582 nm for Pv at 300K, Aem= 510 nm for Post-Pv at 300K, em= 582 nm for Pv at 77K, and Aem= 565 nm for Post-Pv at 77K / PL: lQCo= 367 nm for Pv at 300K, AeXc= 330 nm for Post-Pv at 300K, AeXc= 340 nm for Pv at 77K, and AeXc= 330 nm for Post-Pv at 77K), (d) normalized evolution of the intensity of the STE peak (at the maximum emission associated with the STE band) ISTE with temperature.
- Figure 3 represents powder X-Ray diffraction patterns of (a) layered 2D hybrid perovskite based on 1 ,4-Bis(3-aminopropyl)piperazine (BAPP) and (b) 1 D hybrid post-perovskite based on trans-2,5- dimethylpiperazine (TDMP) (each bottom diagrams are simulations). In the case of 1 D hybrid post-perovskite, diffuse scattering is observed in both powder X-ray diffraction patterns (dotted areas) and single-crystal X-ray diffraction data (inset).
- Figure 4 represents Rietveld refinement for (a) 2D hybrid perovskite (Rwp = 12.41 %) and (b) 1 D hybrid post-perovskite (Rwp = 24.49%).
- Figure 5 represents Tauc plot for the hybrid post-perovskite. The bandgap (3.92 eV) corresponds to the intersection of a linear fitting of the band-to-band transition with the zero energy axis. The exciton binding is estimated at 0.60eV (difference between 3.92eV and 3.32eV).
- Figure 6 represents PLE (top) and PL (bottom) spectra for the 1 D hybrid post-perovskite at different temperatures. For each excitation (emission) spectra, Aem (Aexc) were selected to maximize the emission signal.
- Figure 7 represents PLE (top) and PL (bottom) spectra for the 2D hybrid perovskite at different temperatures. For each excitation (emission) spectra, Aem (Aexc) were selected to maximize the emission signal.
- Figure 8 represents evolution of the photoluminescence properties vs. temperature for the 1 D hybrid post-perovskite. - Figure 9 represents PL decay lifetime vs. temperature for the 2D hybrid perovskite and 1 D hybrid post-perovskite.
- Figure 10 represents TDMP cation after geometry optimization by DFT calculations
- Figure 11 represents BAPP cation after geometry optimization by DFT calculations
- Figure 12 represents Temperature dependant Raman spectra (Laser wavelength excitation : 512nm) of (a) 2D perovskite from 200 cm-1 to 1700 cm-1, (b) 1 D post-perovskite from 200 cm-1 to 1700 cm-1, (c) 2D perovskite from 250 cm-1 to 550 cm-1, (d) 1 D post-perovskite from 250 cm-1 to 500 cm-1, (e) 2D perovskite from 700 cm-1 to 1200 cm-1, (f) 1 D post- perovskite from 750 cm-1 to 1 150 cm-1, (g) 2D perovskite from 1200 cm-1 to 1600 cm-1, (f) 1 D post-perovskite from 1 150 cm-1 to 1600 cm-1. All spectra have been background subtracted and normalized to the band located at 303 cm-1 and 286 cm-1 for the 2D perovskite (BAPP molecule) and 1 D post-perovskite (TDMP molecule), respectively.
- Figure 13 represents Raman spectra of (a) 2D hybrid perovskite compared with (BAPP)Br4, (b) 1 D post-perovskite compared with (TDMP)Br2.
- Figure 14 represents the powder X-ray diffraction of
(TDMP)Pbo.9997Mno.ooo3Br4.
- Figure 15 represents the photoluminescence spectrum of (TDMP)Pbo .9997MPO.0003BG4 at l co = 370 nm.
- Figure 16 represents the CIE coordinates for the series of lead halides (TDMP)PbX4, wherein X is either !(■), Br(o) or Cl(·). EXAMPLES
Example 1 : MATERIALS AND METHODS
Materials synthesis. Polycrystalline samples were prepared by heating (reflux, about 100°C) under agitation, a mixture of 4.82 mmol Pb metal (Alfa Aesar, 99.95%), 9.24 mmol Trans-2,5-dimethylpiperazine (Alfa Aeasar, 98%) or 4.86 mmol 1 ,4-Bis(3-aminopropyl)piperazine, (Sigma Aldrich, 99%) with 20 ml of HBr (Alfa Aeasar, 48%).
After 24 hours, the solutions were cooled down, and the white precipitates were recovered by filtration and washed with ethanol.
A 1 D post-perovskite of formula (TDMP)PbBr4 according to the invention was obtained.
1 D post-perovskites of formula (TDMP)PbCU and (TDMP)PbL according to the invention were obtained according to the same procedure.
A comparative example 2D perovskite of formula (BAPP)Pb2Brs has been prepared in the same experimental conditions. (BAPP)Pb2Brs is not part of the invention.
In other experiments, Mn partially substitutes the Pb in (TDMP)PbBr4. (TDMP)Pbo.9997Mno.ooo3Br4 was prepared according to the same procedure as above but using 4.43 mmol Pb metal and 0.39 mmol MnO. The corresponding powder X-ray diffraction pattern and the emission spectrum are visible on figures 14 and 15). An additional emission in the red region is observed. Thus, the correlated colour temperature (CCT) can be tuned and colour rendering indexes as high as 96 can be reached.
Single crystals were synthesized by hydrothermal method (180°C during 24h and slow cooling at the rate 10°C/h) using a 23mL Teflon-lined stainless steel autoclave. For the 1 D post-perovskite, larger crystals suitable for single-crystal X-ray diffraction could be grown by slow evaporation or vapour diffusion (i.e. diffusion of the vapour of a non-solvent (ethanol) inside of a vial containing the material dissolved in a solvent (water)) [34-36]. Crystals were recovered by filtration. Single-crystal X-ray diffraction. The structure determination was carried out using a Bruker Nonius KappaCCD diffractometer (Mo Ka radiation). SADABS program was used for absorption corrections. The crystal structure was determined with SHELXT and refined with SHELXL- 2013. PLATON program was used to check for additional symmetry elements. CCDC 1551179 contains the supplementary crystallographic data.
Thermal analysis. Differential scanning calorimetry and thermogravimetry were carried out simultaneously with a Netzsch STA 449F3 from room temperature to 800°C under air (Ramp: 5°C/min).
Solid-state NMR. 207Pb solid state NMR experiments were performed at 302 K on a 300 MHz Bruker Avance III by using a 4 mm MAS probe. The 207Pb MAS NMR spectra were acquired with a rotor synchronized Hahn echo sequence (p/2 - t - p - t - acq) with t equal to one rotor period and a radio-frequency field of 90 kHz. The MAS frequency was set to 14 kHz and the recycle delays between scans ranged from 2 to 5 s. Chemical shifts were referenced to Pb(CH3)4 at 0 ppm using a 0.5 M aqueous Pb(N03)2 solution as a secondary reference (d=-2941 ppm from Pb(CH3)4).
Steady-state Photoluminescence. All measurements were carried out on a Horiba Jobin-Yvon Flurolog 3 equipped with a 450W xenon lamp. Two dimensional Excitation vs. emission contour maps were obtained with a CCD camera. Photoluminescence (PL) and photoluminescence excitation (PLE) spectra were acquired by means of R928 PMT detector. Samples were placed in an Oxford cryostat for cooling down to 77 K. Photoluminescence Quantum Yield (PLQY) were achieved using the de Mello method [37] To ensure the quality of the measurements, PLQY of standard samples were measured. SGA 550 100 isiphor® powder from Sigma Aldrich was used and PLQYs of 93% was obtained. Homemade synthesized 2D EDBE-hybrid perovskite lead to a PLQY of 7% (close to the referenced one at 9%). The error on the PLQY measurements was estimated to be +/- 5%.
Time-resolved photoluminescence. Excitation is provided by a regenerative amplified femtosecond Ti:Sapphire laser system (Spectra Physics Hurricane X) frequency-tripled to obtain Aexc=267 nm (pump fluence = 30pJ/cm2). The transient signals were spectrally dispersed into a Princeton Instruments SP2300 imaging Acton spectrograph and temporally resolved with a high dynamic range Hamamatsu C7700 streak camera. Measurements were carried out in an Oxford cryostat for temperature measurement down to 77 K (nitrogen cooling). Raman spectroscopy. Raman spectra were acquired with Aexc=
660 nm from a Cobolt CW laser, at room temperature, using a Horiba Jobin-Yvon T64000 Raman.
UV/Vis spectroscopy. Optical reflection spectra were acquired using a Perkin lambda 1050 equipped with a 150 mm integrating sphere.
Kubelka-Munk is obtained using the relation: (1-R)2/2R where R is the reflectance.
ICP OES. The quantification of Mn was carried out using an ICP- OES iCAP6300 (Thermo). Five standards from 0.01 ppm to 1 ppm Mn were prepared. 100 mg of the material was dissolved into 10 mL of ultrapure water. Example 2: RESULTS
The 2D (1 10) hybrid perovskite exhibits structure in which the ammonium groups are placed within the cavities formed by the inorganic layers (Figure 1 (a)). The 1 D hybrid post-perovskite (TDMP)PbBr4 exhibits an intense white emission (Figure 1 (c)).
X-Ray diffraction on single-crystals grown by slow evaporation or vapor diffusion as well as powder X-ray diffraction showed important diffuse scattering which is characteristic of a strong structural disorder (Figure 3).
Although such disorder hinders the localization of the organic molecules, a structural model could be proposed. Rietveld refinement was performed (Figure 4) and showed that the structure is built of lead bromide ladders. Interestingly, this ladder type is directly related to the structure of the post-perovskite which is the high-pressure polymorph of perovskite.
Similarly to the 2D perovskite which derives from perovskite by slicing along (1 10) planes, the ladder compound derives from post- perovskite by slicing along (100) planes (Figure 1 (a)). Using the same approach to define "low-dimensional hybrid perovskite" from a "hybrid perovskite", the ladder compound is defined as a "low dimensional hybrid post-perovskite", this specific ladder structure can be considered as a low- dimensional post-perovskite.
Solid state NMR experiments were performed to confirm the architecture of the inorganic components. The 207Pb solid state NMR line is governed by chemical shift (CS) interaction which reflects the electronic environment (EE) of the lead nucleus. The isotropic part of CS corresponds to the position of the line whereas the anisotropic part (CSA) originates from EE anisotropy caused by local distortions of the PbBr6 octahedra. For 2D (110) perovskites, all octahedra share the same EE. Consequently, the 207Pb MAS NMR spectrum consists in a single line at 180 ppm flanked by spinning side bands (ssb) as shown in Figure 1 (d) for the layered perovskite based on BAPP. For heavy nuclei such as 207Pb, CS is sensitive to small differences in local structural geometry. Therefore, the broad line exhibited by the 207Pb NMR spectrum of the one-dimensional post- perovskite based on TDMP (Figure 1 (d)) at the similar isotropic chemical shift than the two-dimensional perovskite based on BAPP and with no significant change in CSA (since no additional ssb appears outside the spectral range initially covered by BAPP compound) is a direct proof of the similar environments of lead (i.e. two terminal bromines in cis position, and four bridging bromines) of the two compounds. The line broadening is a direct consequence of distribution of octahedron geometries around a mean geometry.
Both the 2D perovskite and post-perovskite according to the invention showed high color rendering indexes (CRI of 87, and 75 respectively), which are similar to the ones of previously reported 2D hybrid perovskites [12,17,18]. The corresponding correlated color temperatures (CCT) are 4369 K and 7458 K, respectively (Figure 2(a)). The main difference between the two hybrid lead halides lies on the intensity of the broadband white emission. The PLQY for the layered perovskite was measured at 1.5% which is within the same range as the ones of previously reported compounds [12,17,18]. On the other hand, the PLQY of the low-dimensional post-perovskite according to the invention was measured at 45% which is 5-fold of the PLQY of the previous record in hybrid perovskite, and almost 4-fold of the PLQY of the previous record in all lead halides [16,18] Owing to dielectric confinement, sharp excitonic peaks can be observed in Kubelka-Munk absorption spectra (Figure 2 (b)) and the exciton binding energy is very high (estimated at 600 meV) for the 1 D hybrid post-perovskite (Figure 5) [7,26-29] In addition, an Urbach tail below the bandgap shows the formation of localized states (corresponding, for example, to lattice defects/disorder) prior to photoexcitation (Figure 2 (b))·
These states favor the trapping of excitons after excitation and could contribute to the enhanced photoluminescence. Hence, locally disordered Pb clusters have previously been shown to have a favorable PL effect on PbW04 [30] Photoluminescence spectra at 300K show a broadband emission at 520 nm and a shoulder at 380 nm attributed to the formation of self-trapped exciton (STE) and free exciton (FE), (Figure 2 (c), 6 and 7) [17]. While increasing the temperature from 77 K to room temperature, both perovskite and post-perovskite show a decrease of the PL intensity together with a blueshift of the broadband emission (Figure 8).
The evolution of the STE intensity with temperature (Figure 2 (d), 6 and 7) clearly reveals the smooth decrease of PL intensity for the hybrid 1 D post-perovskite compared to the 2D perovskite. Activation energies E' associated with the process responsible of the decrease of the PL intensity were determined by Arrhenius fitting. E'A is 23 meV for the 1 D post- perovskite while two energies (E'A = 39 meV and E'B = 156 meV) were determined for the 2D perovskite (Biexponential fitting is necessary for this compound). E'A (23 meV and 39 meV for 1 D and 2D compounds, respectively) are associated with the detrapping process between STE and FE [28]. Beside this, the post-perovskite according to the invention exhibits a very long STE PL lifetime t of 62 ns at room temperature in comparison to the layered compound (T = 0.58 ns) and the previously reported 2D perovskites (typically lower than 14 ns) [9,11,17,18]. This lifetime, which is sensitive to non-rad iative pathways, decreases from 77K to room temperature for both compounds (Figure 9).
Both the 2D perovskite and 1 D post-perovskite exhibit Pb in the same environments (i.e. Pb connected with four bridging bromines and two terminal bromines in cis position) ((Figure 1 (b) and (d)). Flowever, 2D perovskites are built of corner-sharing PbBr6 octahedra while the 1 D post- perovskites are built of both corner- and edge- sharing octahedra. This structural difference is very important for some radiative species. For corner-sharing PbX6 octahedra, species such as Pb23+ or Pb22+ (reported for PbBr2) would be difficult to form under excitation because halogens are located between adjacent Pb [20]. Distortions in perovskites could assist the creation of such species by shortening Pb-Pb distances and increase the intensity of the resulting white emission (PLQY up to 9%) [9,10,12,31]. Flowever, the scale of this distortion is limited by steric effects. At the opposite, such centres are more likely to form when the octahedra share edges because the Pb-Pb distances are significantly shorter. Flence, the shortest Pb-Pb distances are 5.9638(6) A in the 2D perovskite while they are 4.5494(64) A in the 1 D post-perovskite. Moreover, each of the dimers (pairs of edge-sharing PbBr6 octahedra) in 1 D post-perovskite can act more independently (i.e. without affecting the overall structure) to create species involving Pb pairs and X pairs than in more condensed edge- sharing lead halide structures [16]. The dimensionality of the crystalline systems also plays an important role on the exciton self-trapping. In one- dimensional systems such as the 1 D post-perovskite, the deformation energy is low and there is no or small barrier to self-trapping [32] At the opposite, free states are always stable or metastable in three-dimensional systems [32] In addition, the excited species are less likely to diffuse throughout the material when the dimensionality decreases. These phenomena would explain why broad-band emissions originating from self- trapped excitons would lead to higher PLQY when the dimensionality of hybrid lead halides is lowered. Thus, lowering the dimensionality is detrimental to solar cells applications in which exciton trapping must be prevented but beneficial in SSL in which it enhances the PLQY.
In addition to these structural characteristics (short Pb-Pb, short X- X, low dimension) which are assets to promote self-trapped states, the PL quenching with temperature must be minimized to enhance the white emission at room temperature. In the 2D perovskite and previously reported hybrid perovskites, the emissions are relatively high at low temperature (i.e. below 100K) but rapidly quench with temperature. The activation energy E'B associated with this fast PL quenching for the layered compound (E'B = 156 meV) and previously reported perovskites (typically around 100-150 meV) are associated with phonon modes from the organic molecules [7,19,33]. DFT calculations were performed and enabled to identify these modes as the rocking and twisting of CFh on chains and cycles (Supporting Information). In the case of the 1 D hybrid post- perovskite, Raman spectroscopy, theoretical calculations, and PL techniques suggest that the organic component hardly interacts with the lead halide inorganic component preventing the quenching by the C-H vibrations of TDMP (Figure 2(d)).
Synthesizing low-dimensional hybrid post-perovskite is an efficient approach to stabilize the self-trapped states. Thus, in addition of tuning the CRI and CCT by halogen substitution which has been extensively investigated in the past few years, the ability of creating such self-trapped states in hybrid lead halides is another important parameter to control the intensity of the white broad-band emission.
Specific characteristics such as low dimensionality of the metal halide system, short Pb-Pb and X-X distances, and weak organic-inorganic interactions favor the formation of such radiative centres by lowering the deformation potentials and preventing the quenching due to the vibration modes of organic molecules. The enhancement of the quantum yield resulting from low dimensional hybrid post-perovskites represents an important step forwards in the practical use of such materials in optoelectronics.
Example 3: CHARACTERIZATION
Table 1 : Crystallographic data for the 2D hybrid perovskite based on 1 ,4- Bis(3-aminopropyl)piperazine (BAPP).
Table 2: Atomic Coordinates (*104) and Equivalent Isotropic Displacemen Parameters (A2*103) for the 2D hybrid perovskite.
Table 3. Atomic Coordinates (*104) and Equivalent Isotropic Displacement Parameters (A2*103) for the 1 D hybrid post-perovskite (TDMP)PbBr4 (with TDMP = Trans-2,5-dimethylpiperazinium) (P-42im, a =15.786(2) A, c =6.094(12) A). The data collection was carried out at 100 K (Ri [I>=2s (I)] = 0.0882, WR2 [I>=2s (I)] = 0.2200, Goodness-of-fit = 1.022). In this structural model, the organic molecules could not be localized because of strong structural disorder. The refinement of the occupancies was constrained to take in consideration a disorder between two regular PbBr6 octahedra.
Steady-state PL and PLE vs. temperature
The two curves of Figure 2(c) are fitted using the Arrhenius law:
Where lo is the PL intensity at OK, A (B) is a preexponential factor, kB the Boltzmann constant and E'A (E'B) the activation energy associated with the process responsible for the decrease of the PL intensity (E'A = 23 meV for the 1 D post-perovskite and E'A = 39 meV / E'B = 156 meV for the 2D perovskite). In similar hybrid perovskites, E'B as large as 147 meV, 105 meV,1 130 meV [39], or 83meV [40], were previously reported. Thirumal et al. described for their compound two processes associated with two activation energies (see the second equation above): E'A = 12 meV and E'B = 120 meV [41]. The first energy is comparable with E'A obtained for the 1 D hybrid post-perovskite (E'A = 23 meV) or 2D hybrid perovskite (E'A = 39 meV) while the second one fits well with previous studies and is solely visible in the 2D hybrid perovskite (E'B = 156 meV), in which the PLQYs associated with the broad white light emission were low.
PL lifetime vs. temperature
The mean lifetime t was obtained by fitting the PL decay with two non-coupled exponentials convoluted with the laser pulse. Table 4 presents the fitting results obtained for the different samples at various temperatures where TI , T2, PI , P2 are lifetimes and weights for the two non- coupled exponentials.
decay.
Photoluminescence Quenching with temperature
Activation energies E'B associated with the process responsible of the Photoluminescence (PL) quenching for the layered compound (E'B = 156 meV) is comparable to previously reported values for other perovskites (typically around 100-150 meV) and can be typically attributed to the organic molecules [38-40]. To identify the group of modes participating to the PL quenching, DFT calculations were performed on both BAPP and TDMP cations. Ground state geometry optimisations and vibrational frequencies were computed at the DFT level using Gaussian 16 Rev. A.03, with the long-range corrected CAM-B3LYP functional associated with the basis set spaug-cc-pvdz [44] Molecules TDMP (Figure 10) and BAPP (Figure 11 ) are both calculated in vacuum. For both molecules, the calculated bond lengths are in good agreement with experimental bond lengths from the salts (TDMP)Br2 and (BAPP)Br4 (structures determined from Single-crystal X-Ray diffraction data) (Table 5 and 6). From the DFT calculations, vibrational modes of (TDMP)Br2 and post-perovskite (Table 7) as well as (BAPP)Br4 and perovskite (Table 8) could be assigned.
Table 5. Bond lengths for TDMP optimized by DFT calculations and the salt (TDMP)Br2.
Table 6. Bond lengths for BAPP in 2D perovskite, BAPP optimized by DFT calculations, and BAPP in (BAPP)Br4. For the 2D perovskite, the activation energy (156 meV º 1258 cm-1) corresponding to the major contribution of the PL quenching can be compared with experimental modes obtained in FT-Raman (Region 1100 cm-1 to 1400 cm-1). The analysis of calculated vibrations allowed to attribute this group of modes to rocking and twisting of CH2 on chains and cycle of the organic molecules. This identification is also consistent with the literature since C-H vibrations acting as luminescence quenchers have previously been identified for other chemical systems [45,46]. Interestingly, similar activation energies have been previously reported for other low- dimensional hybrid perovskites [38-40]. Thus, it is likely that the PL quenching for other members of this family could also originate from the organic molecules.
Table .7. Assignments of vibrational modes (in cm-1 ) of 1 D post-perovskite and the salt (TDMP)Br2. Only bands from the isolated molecules (i.e. above 350 cm 1) are addressed.
Table 8. Assignments of vibrational modes (in cm-1) of 2D perovskite anc the salt (BAPP)Br4. Only bands from the isolated molecules (i.e. above 350 cm 1) are addressed. From these attributions of the vibration modes responsible of the PL quenching with temperature, two hypotheses could explain why the 2D perovksite shows the contribution of C-H vibrations to the PL quenching which remains unobserved for the 1 D post-perovskite:
(1 ) The vibration modes (rocking and twisting of CFte) of BAPP are (de)activated with temperature and always deactivated for TDMP. (2) The non-rad iative transfer is temperature dependant and is influenced by organic-inorganic interactions.
To discriminate between hypotheses (1 ) and (2) of the PL quenching, complete Raman spectra of 1 D post-perovskite and 2D perovskite have been collected vs. temperature (between 200 cm-1 to 1700 cm-1) (Figure 12). From these measurements, no specific mode (or group of modes) is identified as being deactivated from low to room temperature. This observation is consistent with the nature of the modes involved in the PL quenching since there is no reason for which the C-FI vibrations would be deactivated in the case of TDMP. Thus, hypothesis (1 ) is unlikely.
To confirm the hypothesis (2) and better understand the differences in the organic-inorganic interactions of post-perovskite vs. perovskite, further analyses of the Raman spectra and DFT calculations have been carried out. The comparison between spectra of these compounds vs. salts can provide information on the interactions of organic molecules with inorganic lead halide networks. Thus, the spectrum of the 2D perovskite show some discrepancies with the salt (BAPP)Br4 (relatively large band shifts and some differences in band intensities) (Figure 13(a)) whereas a good agreement can be observed between spectra of the 1 D post-perovskite with (TDMP)Br2 (small band shifts and variations of intensities) (Figure 13(b)). This comparison indicates a strong interaction between the inorganic 2D perovskite and the BAPP molecules [47,48], while the inorganic 1 D post-perovskite hardly interacts with TDMP molecules. Such observation is further confirmed by the analysis of bond lengths (Table 6). Thus, for BAPP cation, bond lengths are well estimated by DFT for the piperazine cycle. Flowever, bond lengths corresponding to the alkyl groups are much shorter in the 2D perovskite than in the calculated isolated molecule. Such differences are due to the constraints of the inorganic layers on the organic chains (organic chains of BAPP are in the cavities of the (110) layers).
In summary, this analysis reveals weak interactions between TDMP and post-perovskite network which prevents the luminescence quenching for this compound. For the perovskite network, close proximity with the confined alkyl chains of BAPP favors the thermal quenching by C-H vibrations. This investigation is also supported by X-ray diffraction data which shows that BAPP is well-ordered and confined inside the cavities of the (110) 2D perovskites. In contrast, TDMP is not constrained by the inorganic post-perovskite network as suggested by the disorder observed by X-ray diffraction.
LIST OF REFERENCES
1. Tan, Z.-K. et al. Bright light-emitting diodes based on organometal halide perovskite. Nat. Nanotechnol. 9, 687-692 (2014).
2. Sutherland, B. R. & Sargent, E. H. Perovskite photonic sources. Nat. Photonics 10, 295-302 (2016).
3. Stranks, S. D. & Snaith, H. J. Metal-halide perovskites for photovoltaic and light-emitting devices. Nat. Nanotechnol. 10, 391-402 (2015).
4. Nie, W. et al. High-efficiency solution-processed perovskite solar cells with millimeter-scale grains. Science 347, 522-525 (2015).
5. Tsai, H. et al. High-efficiency two-dimensional Ruddlesden-Popper perovskite solar cells. Nature 536, 312-316 (2016).
6. Yuan, M. et al. Perovskite energy funnels for efficient light-emitting diodes. Nat. Nanotechnol. 11, 872-877 (2016).
7. Blancon, J.-C. et al. Extremely efficient internal exciton dissociation through edge states in layered 2D perovskites. Science eaal4211 (2017). doi: 10.1126/science. aal4211
8. Dohner, E. R., Hoke, E. T. & Karunadasa, H. I. Self-Assembly of Broadband White-Light Emitters. J. Am. Chem. Soc. 136, 1718-1721 (2014).
9. Dohner, E. R., Jaffe, A., Bradshaw, L. R. & Karunadasa, H. I. Intrinsic White-Light Emission from Layered Hybrid Perovskites. J. Am. Chem. Soc. 136, 13154-13157 (2014).
10. Cortecchia, D. et al. Broadband Emission in Two-Dimensional Hybrid Perovskites: The Role of Structural Deformation. J. Am. Chem. Soc. 139, 39-42 (2017).
11. Thirumal, K. et al. Morphology-Independent Stable White-Light Emission from Self-Assembled Two-Dimensional Perovskites Driven by Strong Exciton-Phonon Coupling to the Organic Framework. Chem. Mater. 29, 3947-3953 (2017). 12. Mao, L, Wu, Y., Stoumpos, C. C., Wasielewski, M. R. & Kanatzidis, M. G. White-Light Emission and Structural Distortion in New Corrugated Two-Dimensional Lead Bromide Perovskites. J. Am. Chem. Soc. 139, 5210-5215 (2017).
13. Zhuang, Z. et al. Intrinsic Broadband White-Light Emission from Ultrastable, Cationic Lead Halide Layered Materials. Angew. Chem. 129, 14603-14608 (2017).
14. Shi, D. et al. Low trap-state density and long carrier diffusion in organolead trihalide perovskite single crystals. Science 347, 519-522 (2015).
15. Wu, X. et al. Trap States in Lead Iodide Perovskites. J. Am. Chem. Soc. 137, 2089-2096 (2015).
16. Yuan, Z. et al. One-dimensional organic lead halide perovskites with efficient bluish white-light emission. Nat. Commun. 8, 14051 (2017).
17. Hu, T. et al. Mechanism for Broadband White-Light Emission from Two-Dimensional (110) Hybrid Perovskites. J. Phys. Chem. Lett. 7, 2258- 2263 (2016).
18. Yin, J., Li, H., Cortecchia, D., Soci, C. & Bredas, J.-L. Excitonic and Polaronic Properties of 2D Hybrid Organic-Inorganic Perovskites. ACS Energy Lett. 2, 417-423 (2017).
19. Cortecchia, D. et al. Polaron self-localization in white-light emitting hybrid perovskites. J. Mater. Chem. C 5, 2771-2780 (2017).
20. de Gruijter, W. C. & Kerssen, J. EPR and luminescence of u.v. irradiated PbCh and PbBr2 crystals. Solid State Commun. 10, 837-841 (1972).
21. Iwanaga, M., Watanabe, M. & Hayashi, T. Charge separation of excitons and the radiative recombination process in PbBr2 crystals. Phys. Rev. B 62, 10766-10773 (2000).
22. Mitzi, D. B., Wang, S., Feild, C. A., Chess, C. A. & Guloy, A. M. Conducting Layered Organic-inorganic Halides Containing <110>-Oriented Perovskite Sheets. Science 267, 1473-1476 (1995). 23. Li, Y. Y. et al. Novel <110) -Oriented Organic-Inorganic Perovskite Compound Stabilized by N-(3-Aminopropyl)imidazole with Improved Optical Properties. Chem. Mater. 18, 3463-3469 (2006).
24. Takeoka, Y., Asai, K., Rikukawa, M. & Sanui, K. Hydrothermal Synthesis and Structure of Zero-dimensional Organic-inorganic Perovskites. Chem. Lett. 34, 602-603 (2005).
25. Tulsky, E. G. & Long, J. R. Dimensional Reduction: A Practical Formalism for Manipulating Solid Structures. Chem. Mater. 13, 1149-1166 (2001 ).
26. Liao, W.-Q. et at. A lead-halide perovskite molecular ferroelectric semiconductor. Nat. Commun. 6, 8338 (2015).
27. Saidaminov, M. I. et at. High-quality bulk hybrid perovskite single crystals within minutes by inverse temperature crystallization. Nat. Commun. 6, 8586 (2015).
28. Zhang, Z., Wang, M., Ren, L. & Jin, K. Tunability of Band Gap and Photoluminescence in CHsNHsPbb Films by Anodized Aluminum Oxide Templates. Sci. Rep. 7, 1918 (2017).
29. A. Leguy, A. M. et al. Experimental and theoretical optical properties of methylammonium lead halide perovskites. Nanoscale 8, 6317-6327 (2016).
30. Anicete-Santos, M. et al. Contribution of structural order-disorder to the green photoluminescence of PbW04. Phys. Rev. B 75, 165105 (2007).
31. Smith, M. D., Jaffe, A., Dohner, E. R., Lindenberg, A. & Karunadasa, H. I. Structural Origins of Broadband Emission from Layered Pb-Br Hybrid Perovskites. Chem. Sci. 8, 4497-4504 (2017).
32. Song, K. S. & Williams, R. T. Self-Trapped Excitons. (Springer- Verlag, 1993).
33. Yangui, A. et al. Optical Investigation of Broadband White-Light Emission in Self-Assembled Organic-Inorganic Perovskite (C6HiiNH3)2PbBr4. J. Phys. Chem. C 119, 23638-23647 (2015). 34. Handbook of Crystal Growth (Second Edition) in (ed. Nishinaga, T.) iii (Elsevier, 2015). doi:10.1016/B978-0-444-56369-9.01001-7
35. Authier, A. International Tables for Crystallography 2nd edn, Vol. D, Ch. A. A (Wiley, 2013).
36. Chayen, N. E. & Saridakis, E. Protein crystallization: from purified protein to diffraction-quality crystal. Nat. Methods 5, 147-153 (2008).
37. de Mello, J. C., Wittmann, H. F. & Friend, R. H. An improved experimental determination of external photoluminescence quantum efficiency. Adv. Mater. 9, 230-232 (1997).
38. Cortecchia, D. et al. Polaron self-localization in white-light emitting hybrid perovskites. J. Mater. Chem. C 5, 2771-2780 (2017).
39. Blancon, J.-C. et al. Extremely efficient internal exciton dissociation through edge states in layered 2D perovskites. Science eaal4211 (2017). doi: 10.1126/science. aal4211
40. Yangui, A. et al. Optical Investigation of Broadband White-Light Emission in Self-Assembled Organic-Inorganic Perovskite (C6HI1 NH3)2PbBr4. J. Phys. Chem. C 119, 23638-23647 (2015).
41. Thirumal, K. et al. Morphology-Independent Stable White-Light Emission from Self-Assembled Two-Dimensional Perovskites Driven by Strong Exciton-Phonon Coupling to the Organic Framework. Chem. Mater. 29, 3947-3953 (2017).
42. Massuyeau, F. et al. Electronic interaction in composites of a conjugated polymer and carbon nanotubes: first-principles calculation and photophysical approaches. Beilstein J. Nanotechnol. 6, 1138-1144 (2015).
43. Frisch, M. et al. Gaussian, Inc., Wallingford CT, 2016. Gaussian G16A03. 2016.
44. Yanai, T., Tew, D. P. & Handy, N. C. A new hybrid exchange- correlation functional using the Coulomb-attenuating method (CAM- B3LYP). Chem. Phys. Lett. 393, 51-57 (2004).
45. Wolbers, M. P. O. et al. Photophysical studies of m-terphenyl- sensitized visible and near-infrared emission from organic 1 :1 lanthanide ion complexes in methanol solutions. J. Chem. Soc. Perkin Trans. I1 1998, 2141-2150 (1998).
46. Bischof, C., Wahsner, J., Scholten, J., Trosien, S. & Seitz, M. Quantification of C-H Quenching in Near-IR Luminescent Ytterbium and Neodymium Cryptates. J. Am. Chem. Soc. 132, 14334-14335 (2010).
47. Cortecchia, D. et al. Broadband Emission in Two-Dimensional Hybrid Perovskites: The Role of Structural Deformation. J. Am. Chem. Soc. 139, 39-42 (2017).
48. Xie, L.-Q. et al. Organic-inorganic interactions of single crystalline organolead halide perovskites studied by Raman spectroscopy. Phys.
Chem. Chem. Phys. 18, 18112-18118 (2016).
49. Dobson, D. P. et al. Towards better analogues for MgSi03 post- perovskite: NaCoF3 and NaNiF3, two new recoverable fluoride post- perovskites. Physics of the Earth and Planetary Interiors, 189, 3-4, 171- 175 (2011 ).
50. Wang, S.-S. et al. Temperature-Induced Structural Phase Transitions in Two New Postperovskite Coordination Polymers. Crystal Growth & Design, 19, 2, 1111-1117 (2019).

Claims

1. One dimensional hybrid post-perovskite of formula I :
AaMmXx.yHteO Formula I
wherein
- 0 < a < 5,
- 1 < m < 2,
- 2 < x < 12,
- 0 < y,
- A represents a cis- or trans- piperazine derivative of formula II:
Formula II
in which R1 and R2, identical or different, represent a C1-C3 linear or branched alkyl chain, preferably R1 and R2 represent methyl groups,
- M represents one or more metal atoms chosen from the group comprising Pb, Sn, Ge, Sb, Bi, Cu, Mn and Zn and mixture thereof,
- X represents one or more halogen atoms.
2. One dimensional hybrid post-perovskite according to claim 1 , wherein A represents trans-2,5-dimethylpiperazine.
3. One dimensional hybrid post-perovskite according to any of preceding claims, wherein X is chosen from F, Cl, Br and I and mixtures thereof.
4. One dimensional hybrid post-perovskite according to any of preceding claims, wherein M is chosen from Pb and Sn.
5. One dimensional hybrid post-perovskite according to any of preceding claims, wherein a = 1 , m = 1 and x = 4.
6. A method for producing one dimensional hybrid post- perovskite of any claims 1 to 5, comprising a step of mixing the reagents:
- one or more M or MX2,
- a piperazine derivative, and
- one or more aqueous HX to obtain an aqueous mixture,
the piperazine derivative, M and X being defined as above.
7. Method according to the preceding claim, wherein the method further comprise a step of heating and agitating the mixture.
8. Method according to the preceding claim wherein the heating temperature is from 20°C to 250°C.
9. Method according to claim 7 or 8, wherein the agitation is carried over a period from 10 seconds to 100 hours.
10. Luminescent material comprising a one dimensional hybrid post-perovskite according to any of claims 1 to 5.
11. A luminescent device comprising a one dimensional hybrid post-perovskite material according to the preceding claim.
12. One dimensional hybrid post-perovskite TDMPPbBr4 crystal form wherein the XRPD pattern at Bragg angles (2Q) shows peaks of values 7.92°, 12.52°, 14.60°, 20.24°, 22.50°, 23.20°, 28.22°, 28.80°.
13. One dimensional hybrid post-perovskite TDMPPbCL crystal form wherein the XRPD pattern at Bragg angles (2Q) shows peaks of values 8.15°, 12.86°, 18.18°, 20.74°, 23.02°, 23.75°, 28.87°, 29.45°, 32.75°, 33.78°, 34.78°, 35.28°.
14. One dimensional hybrid post-perovskite TDMPPbU crystal form wherein the XRPD pattern at Bragg angles (2Q) shows peaks of values 7.68°, 12.13°, 13.73°, 21.74°, 22.42°, 27.79°, 32.83°.
15. Use of a one dimensional hybrid post-perovskite according to any of claims 1 to 5 in a luminescent device, preferably a LED such as display or backlighting, LASER, wireless light fidelity.
EP19732572.3A 2018-06-15 2019-06-14 Low-dimensional hybrid post-perovskites for high efficiency white-light emission Active EP3807255B8 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
EP18305737.1A EP3581568A1 (en) 2018-06-15 2018-06-15 Low-dimensional hybrid post-perovskites for high efficiency white-light emission
PCT/EP2019/065770 WO2019238960A1 (en) 2018-06-15 2019-06-14 Low-dimensional hybrid post-perovskites for high efficiency white-light emission

Publications (3)

Publication Number Publication Date
EP3807255A1 true EP3807255A1 (en) 2021-04-21
EP3807255B1 EP3807255B1 (en) 2023-08-16
EP3807255B8 EP3807255B8 (en) 2023-09-20

Family

ID=62778853

Family Applications (2)

Application Number Title Priority Date Filing Date
EP18305737.1A Withdrawn EP3581568A1 (en) 2018-06-15 2018-06-15 Low-dimensional hybrid post-perovskites for high efficiency white-light emission
EP19732572.3A Active EP3807255B8 (en) 2018-06-15 2019-06-14 Low-dimensional hybrid post-perovskites for high efficiency white-light emission

Family Applications Before (1)

Application Number Title Priority Date Filing Date
EP18305737.1A Withdrawn EP3581568A1 (en) 2018-06-15 2018-06-15 Low-dimensional hybrid post-perovskites for high efficiency white-light emission

Country Status (3)

Country Link
US (1) US12084608B2 (en)
EP (2) EP3581568A1 (en)
WO (1) WO2019238960A1 (en)

Families Citing this family (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
KR101919100B1 (en) * 2018-10-17 2018-11-19 한국과학기술정보연구원 Apparatus and method for simulating lead halide perovskite compound
CN111676010B (en) * 2020-06-22 2023-07-18 江西理工大学 Preparation method of perovskite quantum dot/Eu-MOF composite luminescent material
CN113185970B (en) * 2021-05-06 2023-04-07 济宁学院 Narrow-band green light emission organic-inorganic hybrid lead-calcium-titanium halide ore material, preparation method and application thereof
CN113684027B (en) * 2021-08-25 2022-11-29 中国科学院长春应用化学研究所 Antimony-doped organic-inorganic tin-based perovskite luminescent material and preparation method and application thereof
CN113937245B (en) * 2021-09-03 2023-09-01 华中科技大学 Efficient white light organic-inorganic hybrid zinc-based two-dimensional perovskite material and preparation method thereof
CN114057796B (en) * 2021-11-12 2023-05-16 郑州大学 Hybrid material based on organic-metal manganese halide and preparation method thereof
IT202400003619A1 (en) 2024-02-21 2025-08-21 Nia Narges Yaghoobi CRYSTALLINE COMPOSITION OF LOW-DIMENSIONAL PEROVSKITE, EMBEDDED IN A METALLIC COMPLEX
CN119615375B (en) * 2024-12-02 2025-10-10 武汉理工大学 A zero-dimensional perovskite single crystal and preparation method

Family Cites Families (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4654744A (en) 1982-10-15 1987-03-31 Mitsubishi Denki Kabushiki Kaisha Electromagnetic contactor
US6429318B1 (en) * 2000-02-07 2002-08-06 International Business Machines Corporaiton Layered organic-inorganic perovskites having metal-deficient inorganic frameworks

Also Published As

Publication number Publication date
EP3581568A1 (en) 2019-12-18
US20210071075A1 (en) 2021-03-11
EP3807255B8 (en) 2023-09-20
US12084608B2 (en) 2024-09-10
EP3807255B1 (en) 2023-08-16
WO2019238960A1 (en) 2019-12-19

Similar Documents

Publication Publication Date Title
US12084608B2 (en) Low-dimensional hybrid post-perovskites for high efficiency white-light emission
Li et al. Dual-band luminescent lead-free antimony chloride halides with near-unity photoluminescence quantum efficiency
Li et al. Large-scale room-temperature synthesis of high-efficiency lead-free perovskite derivative (NH4) 2SnCl6: Te phosphor for warm wLEDs
US12018193B2 (en) Organic-inorganic hybrid bulk assemblies and methods
Zhou et al. Luminescent zero-dimensional organic metal halide hybrids with near-unity quantum efficiency
CN108473865B (en) Matrix-incorporated organic-inorganic metal chloride perovskites for use as light emitting materials
Ahmad et al. Uncovering the role of trioctylphosphine on colloidal and emission stability of Sb-alloyed Cs2NaInCl6 double perovskite nanocrystals
US11549056B2 (en) Compositions and methods relating to luminescent structures
Utochnikova et al. Lanthanide 9-anthracenate: solution processable emitters for efficient purely NIR emitting host-free OLEDs
Wu et al. Antimony-doped indium-based halide single crystals enabling white-light emission
Parveen et al. Emerging doping strategies in two-dimensional hybrid perovskite semiconductors for cutting edge optoelectronics applications
CN110869466B (en) Low-dimensional inorganic/organic hybrid metal halide perovskite
Nguyen et al. Design of lanthanide-based metal–organic frameworks with enhanced near-infrared emission
Solari et al. Ligand-assisted solid phase synthesis of mixed-halide perovskite nanocrystals for color-pure and efficient electroluminescence
Chen et al. Precursor chemistry towards highly efficient and phase-stable red emitting CsPbI3 perovskite nanocrystals
Yang et al. Broadband near-infrared emission from 0d hybrid copper halides
Huang et al. A strategy for improving the performance of perovskite red light-emitting diodes by controlling the growth of perovskite crystal
Cheng et al. A new zero-dimensional hybrid antimony halide of (C25H46N) 2SbCl5 with dual-emission and high quantum-efficiency for light-emitting application
Zou et al. Ionothermal synthesis of a hybrid cuprous (I) iodide scintillator with efficient cyan emission and high antiwater stability
Han et al. Strategic defect control of perovskite nanocrystallites with octylammonium iodide toward efficient red perovskite light-emitting diodes with high operative stability
Zou et al. Ionothermal synthesis of a stable three-dimensional [Cu 4 I 4] cluster scintillator with near-unity quantum efficiency and weak thermal quenching
He et al. Tunable bandgap and luminescence characters in single-phase two-dimensional perovskite AVA2PbClxBr4-x alloys
Khan et al. Ultra broadband yellow emitting lead-free metal halide perovskite like compounds with near-unity emission quantum yields
Wang et al. Synthesis of Colloidal Perovskite CH3NH3PbBr3-xClx Nanocrystals with Lead Acetate
Ben Haj Salah et al. Synthesis and Characterization of (FA) 3 (HEA) 2Pb3I11: A Rare Example of< 1 1 0>-Oriented Multilayered Halide Perovskites

Legal Events

Date Code Title Description
STAA Information on the status of an ep patent application or granted ep patent

Free format text: STATUS: UNKNOWN

STAA Information on the status of an ep patent application or granted ep patent

Free format text: STATUS: THE INTERNATIONAL PUBLICATION HAS BEEN MADE

PUAI Public reference made under article 153(3) epc to a published international application that has entered the european phase

Free format text: ORIGINAL CODE: 0009012

STAA Information on the status of an ep patent application or granted ep patent

Free format text: STATUS: REQUEST FOR EXAMINATION WAS MADE

17P Request for examination filed

Effective date: 20210104

AK Designated contracting states

Kind code of ref document: A1

Designated state(s): AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL NO PL PT RO RS SE SI SK SM TR

AX Request for extension of the european patent

Extension state: BA ME

DAV Request for validation of the european patent (deleted)
DAX Request for extension of the european patent (deleted)
GRAP Despatch of communication of intention to grant a patent

Free format text: ORIGINAL CODE: EPIDOSNIGR1

STAA Information on the status of an ep patent application or granted ep patent

Free format text: STATUS: GRANT OF PATENT IS INTENDED

RIC1 Information provided on ipc code assigned before grant

Ipc: H10K 50/11 20230101ALI20230308BHEP

Ipc: C07F 7/00 20060101ALI20230308BHEP

Ipc: C07F 7/24 20060101ALI20230308BHEP

Ipc: C01G 21/16 20060101ALI20230308BHEP

Ipc: C07D 295/02 20060101AFI20230308BHEP

INTG Intention to grant announced

Effective date: 20230327

GRAS Grant fee paid

Free format text: ORIGINAL CODE: EPIDOSNIGR3

GRAA (expected) grant

Free format text: ORIGINAL CODE: 0009210

STAA Information on the status of an ep patent application or granted ep patent

Free format text: STATUS: THE PATENT HAS BEEN GRANTED

AK Designated contracting states

Kind code of ref document: B1

Designated state(s): AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL NO PL PT RO RS SE SI SK SM TR

REG Reference to a national code

Ref country code: CH

Ref legal event code: PK

Free format text: BERICHTIGUNG B8

Ref country code: CH

Ref legal event code: EP

RAP2 Party data changed (patent owner data changed or rights of a patent transferred)

Owner name: NANTES UNIVERSITE

Owner name: CENTRE NATIONAL DE LA RECHERCHE SCIENTIFIQUE

REG Reference to a national code

Ref country code: DE

Ref legal event code: R096

Ref document number: 602019035119

Country of ref document: DE

REG Reference to a national code

Ref country code: IE

Ref legal event code: FG4D

REG Reference to a national code

Ref country code: LT

Ref legal event code: MG9D

REG Reference to a national code

Ref country code: NL

Ref legal event code: MP

Effective date: 20230816

REG Reference to a national code

Ref country code: AT

Ref legal event code: MK05

Ref document number: 1599958

Country of ref document: AT

Kind code of ref document: T

Effective date: 20230816

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: GR

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20231117

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: IS

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20231216

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: SE

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20230816

Ref country code: RS

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20230816

Ref country code: PT

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20231218

Ref country code: NO

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20231116

Ref country code: NL

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20230816

Ref country code: LV

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20230816

Ref country code: LT

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20230816

Ref country code: IS

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20231216

Ref country code: HR

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20230816

Ref country code: GR

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20231117

Ref country code: FI

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20230816

Ref country code: AT

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20230816

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: PL

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20230816

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: ES

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20230816

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: SM

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20230816

Ref country code: RO

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20230816

Ref country code: ES

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20230816

Ref country code: EE

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20230816

Ref country code: DK

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20230816

Ref country code: CZ

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20230816

Ref country code: SK

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20230816

REG Reference to a national code

Ref country code: DE

Ref legal event code: R097

Ref document number: 602019035119

Country of ref document: DE

PLBE No opposition filed within time limit

Free format text: ORIGINAL CODE: 0009261

STAA Information on the status of an ep patent application or granted ep patent

Free format text: STATUS: NO OPPOSITION FILED WITHIN TIME LIMIT

26N No opposition filed

Effective date: 20240517

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: IT

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20230816

Ref country code: SI

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20230816

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: BG

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20230816

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: BG

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20230816

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: MC

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20230816

REG Reference to a national code

Ref country code: CH

Ref legal event code: PL

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: LU

Free format text: LAPSE BECAUSE OF NON-PAYMENT OF DUE FEES

Effective date: 20240614

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: IE

Free format text: LAPSE BECAUSE OF NON-PAYMENT OF DUE FEES

Effective date: 20240614

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: BE

Free format text: LAPSE BECAUSE OF NON-PAYMENT OF DUE FEES

Effective date: 20240630

Ref country code: CH

Free format text: LAPSE BECAUSE OF NON-PAYMENT OF DUE FEES

Effective date: 20240630

REG Reference to a national code

Ref country code: BE

Ref legal event code: MM

Effective date: 20240630

PGFP Annual fee paid to national office [announced via postgrant information from national office to epo]

Ref country code: GB

Payment date: 20250626

Year of fee payment: 7

PGFP Annual fee paid to national office [announced via postgrant information from national office to epo]

Ref country code: FR

Payment date: 20250626

Year of fee payment: 7

PGFP Annual fee paid to national office [announced via postgrant information from national office to epo]

Ref country code: DE

Payment date: 20250725

Year of fee payment: 7

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: CY

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT; INVALID AB INITIO

Effective date: 20190614

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: HU

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT; INVALID AB INITIO

Effective date: 20190614